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Entropy based attribute reduction approach for incomplete decision table

机译:不完全决策表的基于熵的属性约简方法

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In this paper, a new entropy based uncertainty measure is introduced for evaluating the significance of subsets of attributes in incomplete decision tables. Some properties of rough conditional entropy are derived. And three attribute reduction algorithms are provided, including an algorithm using exhaustive search, an algorithm using heuristic search and an algorithm using probabilistic search for incomplete decision tables. Furthermore, several simulation experiments on real incomplete data sets are carried out to assess the efficiency of the proposed algorithms. The final simulation results indicate that two of above algorithms can give satisfying performances in the procedure of attribute reduction for incomplete decision tables.
机译:在本文中,引入了一种新的基于熵的不确定性度量,用于评估不完整决策表中属性子集的重要性。推导了粗糙条件熵的一些性质。并提供了三种属性约简算法,包括使用穷举搜索的算法,使用启发式搜索的算法和使用概率搜索的不完整决策表算法。此外,对真实的不完整数据集进行了一些仿真实验,以评估所提出算法的效率。最终的仿真结果表明,以上两种算法在不完全决策表的属性约简过程中都能表现出令人满意的性能。

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